PubMed · 42379168
Systematic discovery of pathogen effector functions across human pathogens and pathways.
Abstract
Pathogens deploy effector proteins to exploit host cell biology, and most effector open reading frames (ORFs) are rapidly evolving and lack functional annotation. We developed the effector ORFeome (eORFeome), a scalable functional genomics platform encompassing 3,835 effector ORFs from diverse viruses, bacteria, and parasites. High-throughput barcoded screens across nuclear factor κB (NF-κB), apoptosis, p53, cGAS-STING, and major histocompatibility complex class I (MHC class I) pathways revealed novel pathway-modulating functions for hundreds of uncharacterized eORFs, unexpected activities of known effectors, and distinct pathway-specific functions encoded by single ORFs. Illustrating the power of this approach, we identified HHV6A U14 as a p53 antagonist, HHV7 U21 as a dual-function STING antagonist and MHC-I antigen display inhibitor, and adenoviral 13.6K/i-leader protein as a de novo-evolved TAP inhibitor that suppresses MHC-I display. These results establish a general framework for systematic effector annotation, uncover new mechanisms of host-pathogen interaction across kingdoms, and highlight pathogen effectors as a versatile toolkit for rewiring and probing human cellular pathways.
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Tomas Pachano, He Leng, Guillaume Dugied, Travis Tribble, Vincent Loubiere, Yeojin Lee, Felix Rauh, Victor Manon, Kevin Yuan, Jocelyn Nurtanto, Alexander Schleiffer, Veronika Young, Benjamin Weller, Eleanor A Lyons, Matthew R Hass, Leah C Kottyan, Matthew T Weirauch, Juan I Fuxman Bass, Hayley J Newton, Alexander W Ensminger, Pascal Falter-Braun, Jue Chen, Daniel Schramek, Alexander Stark, Mikko Taipale. 2026-06-30. Systematic discovery of pathogen effector functions across human pathogens and pathways.. https://doi.org/10.1016/j.cell.2026.06.017
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